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Molecular-dynamics simulations of solvent effects in the intramolecular charge transfer of 4-(N,N-dimethylamino)benzonitrile

机译:分子动力学模拟中4-(N,N-二甲基氨基)苄腈的分子内电荷转移中溶剂效应的分子动力学模拟

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The microscopic mechanism of solvation of the ground, locally-excited and charge-transfer singlet states of 4-(N,N-dimethylamino)benzonitrile in cyclopentane and acetonitrile is examined. These states play the decisive role in the dual fluorescence observed for this compound in polar solvents. Minimum-energy paths, potential-energy profiles and atomic charges along the dimethylamino twist obtained by high-level ab initio calculations in vacuum were combined with molecular-dynamics simulations in the solvent. Electronic energies, energy gaps and pair-distribution functions were evaluated using equilibrium molecular-dynamics simulations. Solvation effects in cyclopentane turn out to be negligible. In acetonitrile, the charge-transfer state is much more stabilized than the locally-excited state and develops an electronic energy minimum at the fully-twisted geometry. Fluorescence at this geometry is strongly red-shifted, mainly due to the increase of the ground-state energy upon twisting. The calculated vertical excitation energies are in good agreement with experiment, whereas the Stokes' shift in acetonitrile is underestimated by at least 0.3 eV. The state-dependent solvation in acetonitrile is found to be mainly caused by a more pronounced orientation of the solvent towards the donor and acceptor groups in the charge-transfer state. The solvation dynamics in acetonitrile directly after absorption was investigated by nonequilibrium simulations. They reveal the solvent-driven change of the excited-state energy-level pattern. The solvent response is almost linear, and the initial response is very rapid with an average solvation time of 0.2 ps. The present calculations support the twisted intramolecular charge-transfer mechanism for the occurrence of dual fluorescence, although a final confirmation has to await further studies. [References: 82]
机译:考察了环戊烷和乙腈中4-(N,N-二甲基氨基)苄腈的基态,局部激发态和电荷转移单重态溶剂化的微观机理。这些状态在该化合物在极性溶剂中观察到的双重荧光中起决定性作用。通过在真空中通过高级从头算计算获得的沿着二甲基氨基扭曲的最小能量路径,势能分布和原子电荷与溶剂中的分子动力学模拟相结合。使用平衡分子动力学模拟评估电子能量,能隙和成对分布函数。事实证明,环戊烷中的溶剂化作用可忽略不计。在乙腈中,电荷转移状态比局部激发状态要稳定得多,并且在完全扭曲的几何结构上会产生最小的电子能量。这种几何形状的荧光强烈红移,主要是由于扭曲时基态能量的增加。计算出的垂直激发能与实验吻合得很好,而乙腈的斯托克斯位移被低估了至少0.3 eV。发现乙腈中与状态有关的溶剂化主要是由于电荷转移状态下溶剂对供体基团和受体基团的更明显取向引起的。通过非平衡模拟研究了吸收后直接在乙腈中的溶剂化动力学。他们揭示了受溶剂驱动的激发态能级模式的变化。溶剂响应几乎是线性的,初始响应非常快,平均溶剂化时间为0.2 ps。目前的计算支持扭曲的分子内电荷转移机制的双重荧光的发生,尽管最终的确认必须等待进一步的研究。 [参考:82]

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